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Biomedical subjects

M T Baker

Publications and source records attributed to M T Baker.

45 records · Page 3Linked to original sources

The effects of dietary corn oil on the metabolism and activation of benzo[a]pyrene by the benzo[a]pyrene metabolizing enzymes of the mouse.

Male ICR Swiss mice, weighing 16-20 g, were fed ad libitum either a fat-free diet or a diet containing 10% corn oil. After three weeks on these diets, the rates of benzo[a]pyrene (B[a]P) metabolite formation and metabolism to products which covalently bind with macromolecules were compared using hepatic nuclei and microsomal preparations. The maximum activity of B[a]P hydroxylase in microsomes from untreated animals was increased 50% by feeding the corn oil diet, however, B[a]P hydroxylase in microsomes from 3-methylcholanthrene (3-MC)-treated mice was unaffected by diet. In animals treated with phenobarbital, B[a]P metabolism and B[a]P-DNA adduct formation were greater in microsomes from corn oil fed mice compared to those fed the fat-free diet. At a B[a]P concentration of 96 microM, microsomes from corn oil fed untreated mice produced 26% more extractable metabolites and covalent binding to exogenous DNA was increased 46%. At lower substrate concentrations (0.94-15.0 microM B[a]P), B[a]P-DNA and B[a]P-protein binding were 300-400% greater when incubated with microsomes from corn oil fed mice than when incubated with microsomes from mice fed fat-free diet. The apparent Vmax's determined for the formation of each extractable metabolite were increased 1.5-3.0 times by the corn oil diet. Hepatic nuclear B[a]P hydroxylase and nuclear activation of B[a]P to products which covalently bind to DNA in both non-induced and 3-MC-pretreated animals fed the corn oil diet were greater than that observed in animals fed the fat-free diet. B[a]P hydroxylase activities in the lungs of these animals were unaltered by diet.

Animals↗

Influence of dietary thiamin on phenobarbital induction of rat hepatic enzymes responsible for metabolizing drugs and carcinogens.

Male and female Sprague-Dawley rats were fed synthetic diets deficient in or supplemented with thiamin for 2 or 3 weeks. One group of rats receiving the thiamin-supplemented diet was pair-fed the amount consumed by rats fed the thiamin-deficient diet. One-half of each group was administered phenobarbital sodium for four consecutive days prior to decapitation. Rats fed the thiamin-deficient diet had higher NADPH cytochrome c reductase, aniline hydroxylase, and ethylmorphine N-demethylase activities than those fed high levels of thiamin. In addition, these animals generally responded more vigorously to induction by phenobarbital in their synthesis of microsomal protein, and increased activities of NADPH cytochrome c reductase, aniline hydroxylase, and ethylmorphine N-demethylase. Cytochrome P-450 concentration was higher in the microsomes from thiamin-deficient rats and was induced to a greater degree by phenobarbital than in microsomes from rats fed thiamin-supplemented diets ad libitum. Phenobarbital-enhanced metabolism of N-nitrosodimethylamine (DMN) by liver 9,000 g supernatant as evidenced by approximately two-fold increases in formaldehyde formed per gram liver. This increase in DMN metabolism in male rats is due at least in part to the increased concentration of microsomal protein, since metabolism per milligram microsomal protein was not increased. The fact that DMN metabolism per unit of microsomal cytochrome P-450 in phenobarbital-treated animals is decreased to about one-half of that in controls indicates that DMN is either metabolized by a non-cytochrome P-450-dependent system or that it is metabolized by a form of P-450 not induced by phenobarbital. A sex difference was evident in these experiments, females generally being more sensitive to the influence of varying levels of dietary thiamin. Also female rats but not males fed high-thiamin diets responded to phenobarbital with increased DMN metabolism per milligram microsomal protein.

Aniline Compounds↗

The elderly and informed consent: effects of vocabulary level and corrected feedback.

Eighty-seven elderly adults (57-87 years of age) divided into four WAIS vocabulary subgroups (less than 40, 40-49, 50-59, greater than or equal to 60) participated in a study of comprehension and memory of an informed consent procedure. Ss in Group I read the consent form and, with the information sheet still present, answered multiple choice questions covering the main points of information. Feedback and corrected answers were then provided. Ss in Group II read the consent form but did not receive the comprehension test or feedback. All Ss were tested for memory of the information 2-3 weeks later. Results indicated that losses in performance increased with decreasing levels of vocabulary. Losses associated with low vocabulary levels appeared to be comprehension-related and did not increase in later tests of memory. The use of corrected feedback provided a significant general improvement at all vocabulary levels but did not reduce the effects due to vocabulary levels.

Age Factors↗

Metabolism of 2-chloro-1,1-difluoroethene to glyoxylic and glycolic acid in rat hepatic microsomes.

The complete metabolic fate of the volatile anesthetic halothane is unclear since 2-chloro-1,1-diflurorethene (CDE), a reductive halothane metabolite, is known to readily release inorganic fluoride upon oxidation by cytochrome P-450. This study sought to clarify the metabolism of CDE by determining its metabolites and the roles of induce cytochrome P-450 forms in its metabolism. Upon incubation of [14C]CDE with rat hepatic microsomes, two major radioactive products were found which accounted for greater than 94% of the total metabolites. These compounds were determined to be the nonhalogenated compounds, glyoxylic and glycolic acids, which were formed in a ratio of approximately 1 to 2 of glyoxylic to glycolic acid. No other radioactive metabolites could be detected. Following incubation of CDE with hepatic microsomes isolated from rats treated with cytochrome P-450 inducers, measurement of fluoride release showed that phenobarbital induced CDE metabolism to the greatest degree at high CDE levels, isoniazid was the most effective inducer at low CDE concentrations, and beta-naphthoflavone was ineffective as an inducer. These results suggest that CDE biotransformation primarily involves the generation of an epoxide intermediate, which undergoes mechanisms of decay leading to total dehalogenation of the molecule, and that this metabolism is preferentially carried out by the phenobarbital- and ethanol-inducible forms of cytochrome P-450.

Animals↗

Comparative defluorination and cytochrome P-450 loss by the microsomal metabolism of fluoro- and fluorochloroethenes.

Halogenated ethenes are oxidatively metabolized by cytochrome P-450 to intermediates which inactivate cytochrome P-450 by destroying heme and to epoxides which may react with cellular macromolecules or decompose to other products. To determine the relative capabilities of fluoroethenes to inactivate cytochrome P-450 and undergo metabolism, fluoride release, cytochrome P-450 loss, and heme loss due to the metabolism of trifluorochloroethene (TFCE), chlorodifluoroethene (CDE), difluoroethene (DFE), and trifluoroethene (TFE) were compared in rat hepatic microsomes. Fluoride release, in order of decreasing amounts of fluoride released, followed the order: CDE greater than TFCE much greater than TFE greater than DFE. In contrast, in order of each compound's decreasing effectiveness to destroy both cytochrome P-450 and heme, the following sequence was obtained: TFE greater than CDE greater than TFCE greater than DFE. In phenobarbital-induced hepatic microsomes, TFE inactivated up to 67% of the cytochrome P-450, whereas DFE inactivated only up to 17%. The results of this study indicate that chloro substituents enhance defluorination of the ethenes, and that cytochrome P-450 inactivation by the fluoroethenes is highly dependent on the degree and nature of the halogen substituents.

Animals↗

Metabolic activation of the halothane metabolite, [14C]2-chloro-1,1-difluoroethene, in hepatic microsomes.

Halothane is reduced to 2-chloro-1,1,1-trifluoroethane (CTE) and 2-chloro-1,1-difluoroethene (CDE) by cytochrome P-450. These compounds may potentially undergo secondary metabolism in vivo, but their capacity to undergo metabolic activation and bind to macromolecules is unknown. This study, therefore, compared the abilities of CDE and CTE to bind to microsomal components in relation to that of halothane in hepatic microsomes. The results show that CDE, in addition to halothane, binds to microsomes under conditions of cytochrome P-450 activity. While halothane bound predominantly to lipids under nitrogen, CDE bound mainly to protein under oxygen. No CTE binding under any conditions could be detected. On an equimolar basis, CDE binding to protein was approximately one-third of that of halothane under oxidative conditions, however, CDE binding was enhanced in the presence of halothane. The results support the hypothesis that CDE metabolism may contribute to the metabolic binding due to halothane exposures.

Anaerobiosis↗

The release of inorganic fluoride from halothane and halothane metabolites by cytochrome P-450, hemin, and hemoglobin.

Halothane (2-bromo-2-chloro-1,1,1-trifluoroethane) releases inorganic fluoride when incubated anaerobically with rat hepatic microsomes reduced with either NADPH or sodium dithionite. Boiled microsomes (cytochrome P-420), hemoglobin, and hemin, each reduced with sodium dithionite, also catalyze the release of inorganic fluoride from halothane, suggesting that the protein portion of cytochrome P-450 is not required for reductive halothane defluorination. 2-Chloro-1,1-difluoroethylene and its bromo analog 2-bromo-1,1-difluoroethylene undergo metabolism in NADPH-reduced microsomes with optimal release of fluoride occurring under air compared to an atmosphere of nitrogen. Neither 2-chloro-1,1,1-trifluoroethane nor 2-bromo-1,1,1-trifluoroethane liberate fluoride in microsomes under air or nitrogen. 2-Chloro-1,1-difluoroethylene and 2-bromo-1,1-difluoroethylene are metabolized predominantly by oxidative cytochrome P-450 metabolism, while reductive pathways utilizing reduced cytochrome P-450, hemoglobin, or hemin liberate fluoride from halothane.

Animals↗

NADPH and oxygen consumption in isoflurane-facilitated 2-chloro-1,1- difluoroethene metabolism in rabbit liver microsomes.

2-Chloro-1,1-difluoroethene (CDE) metabolism can be facilitated by isoflurane in microsomes. In an effort to elucidate the mechanisms of increased CDE metabolism, NADPH and oxygen consumption during CDE metabolism were measured in the absence and presence of isoflurane in rabbit liver microsomes. In microsomes from phenobarbital-treated rabbits, isoflurane (1-4 mumol, 0.6-2.3%) enhanced CDE (2 mumol, 1.1%) metabolism, increasing fluoride release up to 2.5 times compared with CDE alone. Fluoride release increased with increasing amounts of CDE (1-4 mumol). Isoflurane alone strongly increased NADPH consumption (3.78 +/- 0.4 to 9.65 +/- 0.23 nmol/mg/min +/- SD) and oxygen consumption (3.27 +/- 0.03 to 6.62 +/- 0.75 nmol/mg/min) compared with control when incubated for 5 min at 30 degrees C. No isoflurane metabolism was detected by fluoride release. Incubation of CDE alone resulted in CDE metabolism (0.70 +/- 0.15 nmol/mg/min) and lesser, but significant increases in NADPH (4.79 +/- 0.14) and oxygen consumption (4.44 +/- 0.24) compared with control. Incubation of isoflurane with CDE at 30 degrees C for 5 min caused a 3-fold increase of CDE metabolism (2.18 +/- 0.25 nmol/mg/min); however, no more NADPH (8.59 +/- 0.95) or oxygen (7.22 +/- 0.16) was consumed compared with isoflurane incubation. No significant changes in H2O2 production were observed between all groups. These data indicate that isoflurane is an efficient uncoupler of cytochrome P-450, and suggests that increased CDE metabolism by isoflurane may result from a coupling of isoflurane-stimulated cytochrome P-450 activity to CDE oxidation.

Animals↗